Cost-Optimal Pathways to 75% Fuel Reduction in Remote Alaskan Villages: Preprint
There are thousands of isolated, diesel-powered microgrids that deliver energy to remote communities around the world at very high energy costs. The Remote Communities Renewable Energy program aims to help these communities reduce their fuel consumption and lower their energy costs through the use of high penetration renewable energy. As part of this program, the REopt modeling platform for energy system integration and optimization was used to analyze cost-optimal pathways toward achieving a combined 75% reduction in diesel fuel and fuel oil consumption in a select Alaskan village. In addition to the existing diesel generator and fuel oil heating technologies, the model was able to select from among wind, battery storage, and dispatchable electric heaters to meet the electrical and thermal loads. The model results indicate that while 75% fuel reduction appears to be technically feasible it may not be economically viable at this time. When the fuel reduction target was relaxed, the results indicate that by installing high-penetration renewable energy, the community could lower their energy costs by 21% while still reducing their fuel consumption by 54%.
Citation Formats
TY - DATA
AB - There are thousands of isolated, diesel-powered microgrids that deliver energy to remote communities around the world at very high energy costs. The Remote Communities Renewable Energy program aims to help these communities reduce their fuel consumption and lower their energy costs through the use of high penetration renewable energy. As part of this program, the REopt modeling platform for energy system integration and optimization was used to analyze cost-optimal pathways toward achieving a combined 75% reduction in diesel fuel and fuel oil consumption in a select Alaskan village. In addition to the existing diesel generator and fuel oil heating technologies, the model was able to select from among wind, battery storage, and dispatchable electric heaters to meet the electrical and thermal loads. The model results indicate that while 75% fuel reduction appears to be technically feasible it may not be economically viable at this time. When the fuel reduction target was relaxed, the results indicate that by installing high-penetration renewable energy, the community could lower their energy costs by 21% while still reducing their fuel consumption by 54%.
AU - Simpkins, Travis
A2 - Cutler, Dylan
A3 - Olis, Daniel
A4 - Hirsch, Brian
A5 - Anderson, Katherine
DB - C-MIX - Community Microgrid Information Exchange
DP - Open EI | National Laboratory of the Rockies
DO -
KW - Diesel generators
KW - Other liquid-fuel generators
KW - Battery energy storage
KW - Wind energy
KW - Financing
KW - Business models
KW - Case studies
KW - Performance
KW - Community engagement
KW - Tribal engagement
KW - Stakeholder engagement
LA - English
DA - 2015/01/01
PY - 2015
PB - NLR
T1 - Cost-Optimal Pathways to 75% Fuel Reduction in Remote Alaskan Villages: Preprint
UR - https://cmix.openei.org/submissions/57
ER -
Simpkins, Travis, et al. Cost-Optimal Pathways to 75% Fuel Reduction in Remote Alaskan Villages: Preprint. NLR, 1 January, 2015, C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/57.
Simpkins, T., Cutler, D., Olis, D., Hirsch, B., & Anderson, K. (2015). Cost-Optimal Pathways to 75% Fuel Reduction in Remote Alaskan Villages: Preprint. [Data set]. C-MIX - Community Microgrid Information Exchange. NLR. https://cmix.openei.org/submissions/57
Simpkins, Travis, Dylan Cutler, Daniel Olis, Brian Hirsch, and Katherine Anderson. Cost-Optimal Pathways to 75% Fuel Reduction in Remote Alaskan Villages: Preprint. NLR, January, 1, 2015. Distributed by C-MIX - Community Microgrid Information Exchange. https://cmix.openei.org/submissions/57
@misc{CMIX_Dataset_57,
title = {Cost-Optimal Pathways to 75\% Fuel Reduction in Remote Alaskan Villages: Preprint},
author = {Simpkins, Travis and Cutler, Dylan and Olis, Daniel and Hirsch, Brian and Anderson, Katherine },
abstractNote = {There are thousands of isolated, diesel-powered microgrids that deliver energy to remote communities around the world at very high energy costs. The Remote Communities Renewable Energy program aims to help these communities reduce their fuel consumption and lower their energy costs through the use of high penetration renewable energy. As part of this program, the REopt modeling platform for energy system integration and optimization was used to analyze cost-optimal pathways toward achieving a combined 75\% reduction in diesel fuel and fuel oil consumption in a select Alaskan village. In addition to the existing diesel generator and fuel oil heating technologies, the model was able to select from among wind, battery storage, and dispatchable electric heaters to meet the electrical and thermal loads. The model results indicate that while 75\% fuel reduction appears to be technically feasible it may not be economically viable at this time. When the fuel reduction target was relaxed, the results indicate that by installing high-penetration renewable energy, the community could lower their energy costs by 21\% while still reducing their fuel consumption by 54\%.},
url = {https://cmix.openei.org/submissions/57},
year = {2015},
howpublished = {C-MIX - Community Microgrid Information Exchange, NLR, https://cmix.openei.org/submissions/57},
note = {Accessed: 2026-08-06}
}
Details
Data from Jan 1, 2015
Last updated Mar 30, 2026
Submitted Jun 2, 2026
Organization
NLR
Contact
Daniel, Olis

